Power Control Method and Base Station
A power control method and a base station are disclosed. The method includes obtaining, by a base station, INPUCCH(i). The INPUCCH(i) is an average interference noise power of a physical uplink control channel (PUCCH) carried by radio resources that are allocated by the base station at a subframe i. The base station sends a parameter P0—NOMINAL—PUCCH(i) for power control at the subframe i.
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This application is a continuation of International Application No. PCT/CN2011/081902, filed on Nov. 8, 2011, which claims priority to Chinese Patent Application No. 201010561679.3, filed on Nov. 26, 2010, both of which are hereby incorporated by reference in their entireties.
TECHNICAL FIELDThe present invention relates to the field of communication technologies, and in particular, to a power control method and a base station.
BACKGROUNDA physical uplink control channel (PUCCH, Physical Uplink Control Channel) of a long term evolution technology (LTE, Long Term Evolution) uses a code division multiple access (CDMA, Code Division Multiple Access) technology. Because the CDMA technology is a self-interference system, when co-channel interference reaches a certain degree, a success rate of demodulating information carried by the PUCCH may be affected. Increasing PUCCH transmit power of a user terminal (UE, User Equipment) is a method for increasing the success rate of PUCCH demodulation.
For example, the PUCCH transmit power of the UE at a subframe (Subframe) i is indicated by PPUCCH(i), where PPUCCH(i)=min{PCMAX, P0
where the δPUCCH is a transmit power control command (Transmit Power Control command, TPC command) on a subframe.
In the prior art, after receiving the P0
According to one aspect, the present invention provides a power control method. A base station obtains INPUCCH(i), where the INPUCCH(i) is an average interference noise power of a physical uplink control channel (PUCCH) carried by radio resources that are allocated by the base station at a subframe I. The base station sends a parameter P0
According to another aspect, the present invention provides a power control method. A base station obtains a bit error rate BER(i) of a physical uplink control channel (PUCCH) of a user equipment (UE) at a subframe i. The base station sends a transmit power control command δPUCCH(i−km), where a value of m ranges from 0 to M−1 and M is an integer greater than 1. A value of the δ′PUCCH(i−km) is any one of the following. If the BER(i) is greater than a bit error rate reference value BERPUCCH
According to another aspect, the present invention provides a base station. A first obtaining unit is configured to obtain INPUCCH(i), where the INPUCCH(i) is average interference noise power of a physical uplink control channel (PUCCH) carried by radio resources that are allocated by the base station at a subframe i. A first sending unit is configured to send a parameter P0
According to another aspect, the present invention provides a base station. A second obtaining unit, configured to obtain a bit error rate BER(i) of a physical uplink control channel (PUCCH) of a user equipment (UE) at a subframe i. A second sending unit, configured to send a transmit power control command δ′PUCCH(i−km), where a value of m ranges from 0 to M−1, M is an integer greater than 1, and a value of the δ′PUCCH(i−km), is any one of the following:
if the BER(i) is greater than a bit error rate reference value BERPUCCH
if the BER(i) is smaller than the BERPUCCH
if the BER(i) is equal to the BERPUCCH
In the embodiments of the present invention, the base station may send a more accurate parameter to the UE, so that PUCCH transmit power calculated by the UE at the subframe i is more accurate, and network interference caused by increasing the PUCCH transmit power is further reduced.
The technical solutions in the embodiments of the present invention are hereinafter described clearly and completely with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments of the present invention. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without making creative efforts shall fall within the scope of the present invention.
In the embodiments of the present invention, i is placed in brackets and used as a part of a parameter X, namely, in the form of X(i), indicating a case when the parameter X is at a subframe i. For example, PPUCCH indicates PUCCH transmit power of a UE, and PPUCCH(i) indicates the PUCCH transmit power of the UE at the subframe i. A base station in the embodiments of the present invention may be any access network device for controlling power of the UE, for example, an evolved NodeB (eNB, evolved Node base station) in an LTE system or LTE-Advance system.
Referring to
101. A base station determines a lowest-class service used by a UE located at a cell edge and an uplink control information format (hereinafter referred to as a first uplink control information format) of a PUCCH corresponding to the lowest-class service used by the foregoing UE.
The lowest-class service used by the UE located at the cell edge may be set according to a market need, for example, VoIP, an Internet access, or other services determined by a telecom operator. The first uplink control information format is set according to a control signaling type carried on the PUCCH, and may be one of FORMAT 1a, FORMAT 1b, FORMAT 2, FORMAT 2a, and FORMAT 2b.
The base station may determine, according to a geographic location of the UE, whether the UE is located at the cell edge, or may determine, according to a radio channel condition, whether the UE is located at the cell edge, for example, determine the UE whose radio channel condition deteriorates to a certain degree in a network as a UE located at the cell edge. For example, in mobile communication, a UE located at and under 5% in a cumulative distribution function (CDF, Cumulative Distribution Function) curve is a UE located at the cell edge. If there are multiple UEs located at the cell edge, the base station may obtain the lowest-class service used by only one of the UEs and the first uplink control information format. Optionally, the UE selected by the base station is a UE at the lowest position in the CDF curve, that is, a UE with the worst channel condition.
102. The base station obtains a first signal to interference plus noise ratio SINR0
The SINR0
In this embodiment, the base station may generate the SINR0
Optionally, if the base station periodically sends a parameter related to the PPUCCH(i) of the UE to the UE, that is, the UE updates the PPUCCH(i) according to an update period, the base station only needs to finish obtaining the first signal to interference plus noise ratio at a certain time before the next update period arrives.
103. The base station obtains INPUCCH(i), namely, average interference noise power of a PUCCH carried by radio resources (RB, Radio Bearer) at a subframe i.
A unit of the INPUCCH(i) may be dBm.
In this step, the RBs carrying the PUCCH include RBs carrying the PUCCH of the current uplink control information format.
104. The base station judges whether a relative difference between the INPUCCH(i) and a power reference value INPUCCH
A unit of the INPUCCH
The power reference value INPUCCH
In this step, the base station may preset the threshold INTH
-
- If |INPUCCH(i)−INPUCCH
— REF|>INTH— PUCCH, the base station may learn that when an update period arrives, and if the currently measured INPUCCH(i) changes notably relative to the reference IN value, then the base station executes step 105 to adjust P0— NOMINAL— PUCCH. “∥” in this embodiment indicates an absolute value. - If INPUCCH(i)−INPUCCH
— REF|<INTH— PUCCH, the base station may learn that, relative to a subframe i−1, the cell interference noise at the subframe i changes little, then the base station executes step 106 and keeps the P0— NOMINAL— PUCCH unchanged. In this way, the performance of the UE does not deteriorate in the case that the anti-interference capability of the UE does not change, and an interference condition of the whole network does not change.
- If |INPUCCH(i)−INPUCCH
105. The base station sends P0
Optionally, the base station sends the P0
Optionally, the base station further updates the power reference value INPUCCH
If the value of the changed INPUCCH
By updating INPUCCH
106. The base station sends the P0
Optionally, the base station sends the P0
In this embodiment, when the relative difference between the INPUCCH(i) and the INPUCCH
When this embodiment is applied in a scenario where the UE accesses a certain cell under control of the base station, the PPUCCH(i) determined by the UE=min{PCMAX, P0
Further, the PUCCH in this embodiment may carry the feedback information (signaling such as ACK and NACK), while the feedback information is relevant to downlink data carried on a physical downlink shared channel (Physical Downlink Share Channel, PDSCH) corresponding to the PUCCH. Therefore, the base station may increase the PUCCH transmit power of the UE when the cell interference increases, thereby ensuring correct decoding of the foregoing feedback information, and avoiding incorrect retransmission of the downlink data carried on the PDSCH. Because the base station increases the PUCCH transmit power of the UE based on the SINR0
The difference between another embodiment of the present invention and the foregoing embodiment is that step 102 is changed to be executed between step 104 and step 105, that is, the base station executes steps 101, 103, and 104 sequentially, and then executes steps 102 and 105 sequentially according to a judging result of step 104, or executes step 106. The difference between another embodiment of the present invention and the foregoing embodiment is that steps 101 and 102 are changed to be executed between step 104 and step 105, that is, the base station executes steps 103 and 104 sequentially, and then executes steps 101, 102, and 105 sequentially according to the judging result of step 104, or executes step 106. In the two embodiments, when the base station judges that the relative difference between the INPUCCH(i) and the INPUCCH
Those skilled in the art may understand that the base station may send the P0
Referring to
The UE obtains g(i). As compared with the prior art, the δPUCCH sent by the base station to the UE is more accurate. Therefore, the UE obtains the accurate g(i) according to the accurate δPUCCH, so that the finally obtained PPUCCH(i) is more accurate. This embodiment may include the following steps.
201. A base station obtains a highest-class service used by a UE at a time i and an uplink control information format (hereinafter referred to as a second uplink control information format) of a PUCCH corresponding to the highest-class service used by the UE.
For example, the base station may use the prior art to obtain a terminal identifier of any online UE, the highest-class service used by the UE and its corresponding uplink control information format of the PUCCH. The uplink control information format of the PUCCH may be any one of PUCCH format 1a, PUCCH format 1b, PUCCH format 2, PUCCH format 2a, and PUCCH format 2b.
Optionally, the highest-class service used by the UE is a highest-class service used by the UE at a certain time. For example, if the UE begins to use a service at a certain time, while a class of the service is higher than those of other services being used by the UE, the base station may obtain the service and the uplink control information format of the PUCCH corresponding to the service.
202. The base station obtains a second signal to interference plus noise ratio SINR0
The SINR0
Optionally, if the base station periodically sends a parameter related to a PPUCCH(i) of the UE to the UE, that is, the UE updates the PPUCCH(i) according to an update period, the base station only needs to finish obtaining the second signal to interference plus noise ratio at a certain time before a next update period arrives.
In this embodiment, the base station may generate SINR0
203. The base station obtains a transmit power control command δPUCCH(i−km) at a subframe i−km, where a value of m ranges from 0 to M−1 (M is an integer greater than 1).
In this step, the base station obtains M transmit power control commands in total.
For example, in a frequency division duplex (FDD, Frequency Division Duplex) system, a value of k0 may be 4, and a value of M may be 1. In a time division duplex (TDD, Time Division Duplex) system, reference may be made to the following Table 1 for a downlink association set index (Downlink association set index) K formed of km.
204. The base station compares BER(i) with BERPUCCH
The BER(i) may be a bit error rate of the PUCCH obtained by the base station according to the prior art when the UE is at the subframe i. The BER(i) and BERPUCCH
In this step, the base station may preset the BERPUCCH
If BER(i)>BERPUCCH
If BER (i)<BERPUCCH
If BER(i)=BERPUCCH
205. The base station sends δPUCCH(i−km) to the UE, where δ′PUCCH(i−km)=δPUCCH(i−km)+ΔSINRUE
Optionally, ΔSINRUE
206. The base station sends δ′PUCCH(i−km) to the UE, where δ′PUCCH(i−km)=δPUCCH(i−km)−ΔSINROFFSET (i), where ΔSINROFFSET(i) indicates a second signal to interference plus noise ratio offset used by the UE at the subframe i and is used to reduce the transmit power.
Optionally, the base station sets an initial value of the ΔSINROFFSET, and performs adjustment according to an actual condition, and uses an adjusted ΔSINROFFSET when executing PUCCH power control (for example, executing step 206) next time. For example, the initial value of the ΔSINROFFSET may be 1 dB, and the base station performs adjustment by using 1 dB as a step. Optionally, adjusting of the ΔSINROFFSET by the base station may reflect fast increase and slow decrease, that is, a step used by a value of ΔSINRUE
In this step, the base station may preset the ΔSINROFFSET, or may perform the test estimation under the channel condition so as to obtain the ΔSINROFFSET. Those skilled in the art may understand that the ΔSINROFFSET obtained by the base station through estimation according to different scenarios and/or different channel conditions is different. By adjusting the value of the ΔSINROFFSET, transmit power of a corresponding UE under the base station may be reduced when the PUCCH BER meets a requirement, thereby reducing interference on a neighboring cell while ensuring the performance of the UE.
207. The base station sends δ′PUCCH(i−km) to the UE, where a value of δ′PUCCH(i−km) is the same as a value of δPUCCH(i−km).
In this embodiment, because the base station may use a manner of sending the δPUCCH(i−km) in the prior art to send the δ′PUCCH(i−km), the base station in this step actually sends the δPUCCH(i−km) obtained in step 203 to the UE.
Optionally, in any one of steps 205 to 207 in this embodiment, the base station sends the δ′PUCCH(i−km) to the UE through a physical downlink control channel (Physical Downlink Control Channel, PDCCH).
In this embodiment, the base station first adjusts the obtained δPUCCH(i−km) and then sends the δ′PUCCH(i−km) obtained through adjustment to the UE. Because the δ′PUCCH(i−km) is more accurate than the δPUCCH(i−km) obtained by the base station, the PPUCCH(i) obtained by the UE is more accurate. Therefore, the reliability of signaling transmission can be ensured in the case that the PUCCH channel of each UE in the cell under the control of the base station is based on the code division multiplexing.
When this embodiment is applied in a scenario where the UE keeps online, the UE may perform open loop power control of the PUCCH transmit power by using the prior art, and perform closed-loop power control of the PUCCH transmit power by using the method provided by this embodiment. In the closed-loop power control, the PPUCCH(i) determined by the UE=min{PCMAX, P0
Those skilled in the art may understand that the base station can send the δPUCCH for the UE to obtain the g(i) regardless of the FDD system or the TDD system, thus implementing the closed-loop power control. Therefore, the foregoing embodiment is applicable to both the FDD system and the TDD system.
Another embodiment of the present invention provides a power control method. In this embodiment, a base station may send a parameter related to PPUCCH(i) of an online UE to the UE in a cell under control of the base station, for example, P0
Referring to
Optionally, the base station 30 further includes: a first processing unit 303, configured to judge whether the relative difference between the INPUCCH(i) obtained by the first obtaining unit 301 and the power reference value INPUCCH
Optionally, the first uplink control information format is set according to a control signaling type carried on the PUCCH, and may be one of FORMAT 1a, FORMAT 1b, FORMAT 2, FORMAT 2a, and FORMAT 2b.
Optionally, the SINR0
The base station in this embodiment is applied in a scenario where the UE accesses a certain cell under control of the base station, and in this case, PPUCCH(i) determined by the UE=min{PCMAX, P0
The base station in this embodiment may be used in the method provided by the embodiment shown in
Referring to
if the BER(i) obtained by the second obtaining unit 401 is greater than a bit error rate reference value BERPUCCH
if the BER(i) obtained by the second obtaining unit 401 is smaller than the BERPUCCH
if the BER(i) obtained by the second obtaining unit 401 is equal to the BERPUCCH
Optionally, ΔSINRUE
Optionally, the second obtaining unit 401 is further configured to obtain the highest-class service used by the UE at the time i and the second uplink control information format, for example, the second obtaining unit 401 obtains the foregoing highest-class service and second uplink control information format when the UE begins to use the highest-class service.
The base station in this embodiment is applied in a scenario where the UE keeps online. In this case, the UE may perform open loop power control of PUCCH transmit power by using the prior art, and perform closed-loop power control of the PUCCH transmit power by using the method provided by this embodiment. In the closed-loop power control, PPUCCH(i) determined by the UE=min{PCMAX, P0
Optionally, the base station 40 further includes: a second processing unit 403, configured to compare the BER(i) obtained by the second obtaining unit 401 with the bit error reference value BERPUCCH
The base station in this embodiment may be used in the method provided by the embodiment shown in
Referring to
Optionally, the base station 50 further includes a third processing unit 503. The third processing unit 503 includes the first processing unit 303 in the base station 30 and the second processing unit 403 in the base station 40 provided by the foregoing embodiments.
P0
Persons of ordinary skill in the art may understand that all or part of the steps of the methods according to the foregoing embodiments may be implemented by a program instructing relevant hardware. The program may be stored in a computer readable storage medium, where the medium may include: a ROM, a RAM, a magnetic disk, a compact disk, and so on.
The foregoing is a detailed description of a power control method of an LTE PUCCH and a base station provided by the embodiments of the present invention. The principle and implementation manner of the present invention are described with reference to specific embodiments, and the foregoing embodiments are only intended to help understand the methods and a core idea of the present invention. Meanwhile, with respect to the specific implementation manner and the application scope of the present invention, modifications may be made by persons of ordinary skill in the art according to the idea of the present invention. To sum up, the content of the specification shall not be construed as a limitation on the present invention.
Claims
1. A power control method, comprising:
- obtaining, by a base station, INPUCCH(i), wherein the INPUCCH(i) is an average interference noise power of a physical uplink control channel (PUCCH) carried by radio resources that are allocated by the base station at a subframe i; and
- sending, by the base station, a parameter P0—NOMINAL—PUCCH(i) for power control at the subframe i, wherein if a relative difference between the INPUCCH(i) and a power reference value INPUCCH—REF is greater than a threshold INTH—PUCCH, a value of the P0—NOMINAL—PUCCH(i) is a sum of SINR0—NOMINAL—PUCCH and INPUCCH at the subframe i, wherein the SINR0—NOMINAL—PUCCH is a first signal to interference plus noise ratio of the PUCCH obtained by the base station according to a lowest-class service used by a UE located at a cell edge and a first uplink control information format; and wherein if the relative difference between the INPUCCH(i) and the power reference value INPUCCH—REF is not greater than the threshold INTH—PUCCH, the value of the P0—NOMINAL—PUCCH(i) is the same as a value of a parameter P0—NOMINAL—PUCCH(i−1) for the power control at a subframe i−1.
2. The method according to claim 1, wherein the first uplink control information format is any one of the following formats: format 1A, format 1B, format 2, format 2A, and format 2B.
3. The method according to claim 1, wherein the SINR0—NOMINAL—PUCCH is a signal to interference plus noise ratio that the base station expects the PUCCH, which uses the first uplink control information format, to reach in order to ensure quality of the lowest-class service used by the UE.
4. The method according to claim 1, further comprising:
- sending, by the base station, a transmit power control command δ′PUCCH(i−km), wherein a value of m ranges from 0 to M−1, M is an integer greater than 1;
- wherein if a bit error rate BER(i) of the PUCCH of the UE at the subframe i, wherein the BER(i) is obtained by the base station, is greater than a bit error rate reference value BERPUCCH—REF, δ′PUCCH(i−km)=δPUCCH(i−km)+ΔSINRUE—QCI(i), wherein the ΔSINRUE—QCI(i) is a first signal to interference plus noise ratio offset used by the UE at the subframe i;
- wherein if the BER(i) is smaller than the BERPUCCH—REF, δ′PUCCH(i−km)=δPUCCH(i−km)−ΔSINROFFSET(i), wherein the ΔSINROFFSET(i) is a second signal to interference plus noise ratio offset used by the UE at the subframe i;
- wherein if the BER(i) is equal to the BERPUCCH—REF, the value of the δ′PUCCH(i−km) is the same as a value of the δPUCCH(i−km), wherein the δPUCCH(i−km) is a transmit power control command obtained by the base station at a subframe i−km.
5. The method according to claim 4, wherein a highest-class service used by the UE and a second uplink control information format are obtained by the base station when the UE begins to use the highest-class service.
6. The method according to claim 4, wherein:
- a value of the ΔSINRUE—QCI(i) is a difference between SINR0—UE—PUCCH—MAX(i) and the SINR0—NOMINAL—PUCCH; and
- the SINR0—UE—PUCCH—MAX(i) is a second signal to interference plus noise ratio obtained by the base station according to a highest-class service used by the UE at a time i and a second uplink control information format.
7. The method according to claim 6, wherein the SINR0—UE—PUCCH—MAX is a signal to interference plus noise ratio that the base station expects the PUCCH, which uses the second uplink control information format, to reach in order to ensure quality of service of the highest-class service used by the UE.
8. A base station, comprising:
- a first obtaining unit, configured to obtain INPUCCH(i), wherein the INPUCCH(i) is an average interference noise power of a physical uplink control channel (PUCCH) carried by radio resources that are allocated by the base station at a subframe i; and
- a first sending unit, configured to send a parameter P0—NOMINAL—PUCCH(i) for power control at the subframe i, wherein, if a relative difference between the INPUCCH(i) and a power reference value INPUCCH—REF is greater than a threshold INTH—PUCCH, a value of the P0—NOMINAL—PUCCH(i) is a sum of SINR0—NOMINAL—PUCCH and INPUCCH at the subframe i, wherein the SINR0—NOMINAL—PUCCH is a first signal to interference plus noise ratio of the PUCCH obtained by the first obtaining unit according to a lowest-class service used by a UE located at a cell edge and a first uplink control information format; and wherein, if the relative difference between the INPUCCH(i) and the power reference value INPUCCH—REF is not greater than the threshold INTH—PUCCH, the value of the P0—NOMINAL—PUCCH(i) is the same as a value of a parameter P0—NOMINAL—PUCCH(i−1) for the power control at a subframe i−1.
9. The base station according to claim 8, wherein the first uplink control information format is any one of the following formats: format 1A, format 1B, format 2, format 2A, and format 2B.
10. The base station according to claim 8, wherein the SINR0—NOMINAL—PUCCH is a signal to interference plus noise ratio that the base station expects the PUCCH, which uses the first uplink control information format, to reach in order to ensure quality of the lowest-class service used by the UE.
11. The base station according to claim 8, wherein:
- the first sending unit is further configured to send a transmit power control command δ′PUCCH(i−km), wherein a value of m ranges from 0 to M−1, M is an integer greater than 1;
- wherein if a bit error rate BER(i) of the PUCCH of the UE at the subframe i, wherein the BER(i) is obtained by the first obtaining unit, is greater than a bit error rate reference value BERPUCCH—REF, δ′PUCCH(i−km)=δPUCCH(i−km)+ΔSINRUE—QCI(i), wherein the ΔSINRUE—QCI(i) is a first signal to interference plus noise ratio offset used by the UE at the subframe i;
- wherein if the BER(i) is smaller than the BERPUCCH—REF, δ′PUCCH(i−km)=δPUCCH(i−km)−ΔSINROFFSET(i), wherein the ΔSINROFFSET(i) is a second signal to interference plus noise ratio offset used by the UE at the subframe i; and
- wherein if the BER(i) is equal to the BERPUCCH—REF, the value of the δ′PUCCH(i−km) is the same as a value of the δPUCCH(i−km), wherein the δPUCCH(i−km) is a transmit power control command obtained by the first obtaining unit at a subframe i−km.
12. The base station according to claim 11, wherein a highest-class service used by the UE and a second uplink control information format are obtained by the base station when the UE begins to use the highest-class service.
13. The base station according to claim 11, wherein:
- a value of the ΔSINRUE—QCI(i) is a difference between SINR0—UE—PUCCH—MAX(i) and the SINR0—NOMINAL—PUCCH; and
- the SINR0—UE—PUCCH—MAX(i) is a second signal to interference plus noise ratio obtained by the base station according to a highest-class service used by the UE at a time i and a second uplink control information format.
14. The base station according to claim 13, wherein the SINR0—UE—PUCCH—MAX is a signal to interference plus noise ratio that the base station expects the PUCCH, which uses the second uplink control information format, to reach in order to ensure quality of service of the highest-class service used by the UE.
Type: Application
Filed: Jul 12, 2012
Publication Date: Nov 1, 2012
Patent Grant number: 8737340
Applicant: HUAWEI TECHNOLOGIES CO., LTD. (Shenzhen)
Inventors: Changzhu Li (Shenzhen), Han Bu (Shenzhen), Ningwei Zhang (Shenzhen), Jun Yu (Shenzhen)
Application Number: 13/548,135
International Classification: H04W 52/24 (20090101); H04W 52/20 (20090101); H04W 72/04 (20090101);